High-pressure-resistance processing shed support
By introducing wire protective nets and shock absorbing mechanisms into the processing shed bracket, the problem of weak compressive resistance of existing brackets is solved, and the impact of falling objects is effectively resisted, ensuring that the ceiling does not deform and ensuring the safety of workers.
Patent Information
- Application Number
- CN202421869979.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-05
AI Technical Summary
The existing processing shed bracket structure is integrated and fixed, which lacks shock absorption capacity, resulting in weak compressive resistance, and the ceiling is prone to deform or breakdown when falling objects at high altitudes, posing safety hazards.
A support frame structure including seating floor, support steel, longitudinal beam slabs, cross beam slabs and arc-shaped support frames was designed. Combined with the wire protective net and shock absorbing mechanism, the initial impact of the falling object is buffered through the wire protective net, and the shock absorbing mechanism reduces the impact force and enhances the compressive resistance of the overall structure.
It effectively improves the compressive resistance of the processing shed bracket, avoids deformation or damage to the ceiling, and ensures the safety of workers below.
Smart Images

Figure CN223062120U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of construction engineering, in particular to a processing shed support with high compressive strength. Background Art
[0002] In a construction site, the processing of steel bars is usually completed in a processing shed. The processing shed is built by various component supports and a ceiling, creating an activity place for workers to process steel bars and providing a safe environmental guarantee.
[0003] Currently, most of the processing shed supports are integrally welded on-site using simple steel sections, steel pipes, etc. As an integral unit, they are relatively fixed, lack shock absorption ability, have a weak structure, and poor compressive strength. Especially when an object falls from a height, the ceiling is directly severely damaged, easily causing the ceiling or the overall structure to deform. In severe cases, the ceiling is penetrated or the entire structure is damaged, posing a certain safety hazard to the workers below.
[0004] Therefore, for the above-mentioned existing processing shed supports, with an overall integral fixed structure and lack of shock absorption ability, resulting in low structural strength and weak compressive strength. When an object falls from a height, the ceiling is directly severely damaged, easily causing the ceiling or the overall structure to deform, or even the ceiling is penetrated and the entire support is damaged, posing a certain safety hazard to the workers below. This problem urgently needs to be solved to improve the usage scenario of the processing shed support with high compressive strength. Content of the Utility Model
[0005] In order to overcome the problems of the existing processing shed support lacking a shock absorption mechanism, resulting in low structural strength, weak compressive strength, when an object falls from a height, the ceiling is directly severely damaged, easily causing the ceiling or the overall structure to deform, or even the ceiling is penetrated and the entire support is damaged, posing a certain safety hazard to the workers below.
[0006] The technical solution of the utility model is: a processing shed support with high compressive strength, including a seating floor. There are two seating floors. Two sets of shock absorption mechanisms are respectively arranged at the upper ends of the two seating floors. Multiple support steel sections are equally spaced at the upper ends of the two sets of shock absorption mechanisms. A longitudinal beam plate is arranged at the upper ends of a row of support steel sections. Multiple cross beam plates are welded at equal intervals between the upper ends of the two longitudinal beam plates. An arc-shaped support frame is welded at the upper end of each cross beam plate. A ceiling is arranged at the upper end of the arc-shaped support frame. A steel wire protection net is arranged at the upper end of the ceiling. The shock absorption mechanism includes a bottom plate, a shock absorption plate, and a spring shock absorption damper. The bottom plate is arranged at the upper end of the seating floor. The shock absorption plate is welded at the lower end of a row of support steel sections. Multiple spring shock absorption dampers are fixedly connected at equal intervals between the shock absorption plate and the bottom plate.
[0007] Preferably, the sitting floor is placed on the ground to expand the supporting area with the ground. The supporting steel supports the longitudinal beam plates, each longitudinal beam plate supports the cross beam plate, and the cross beam plate supports the arc-shaped support frame, and then supports the entire ceiling. There is a wire protection net on it to buffer the impact of falling objects on the ceiling for the first time, avoiding direct impact on the ceiling. When a relatively large high-altitude falling object occurs, the object first impacts the wire protection net to slow down, and then touches the ceiling. During the process, the impact force is transmitted downward to the shock absorption mechanism. Under the shock absorption and buffering of multiple spring shock absorption dampers, the impact damage to the ceiling is reduced. Overall, the structure has high strength and strong compressive capacity, can effectively resist the impact of falling objects, and prevent the ceiling or the overall structure from being deformed and damaged, effectively ensuring the safety of the operators below.
[0008] Preferably, a plurality of reinforcing fixing plates are welded at equal intervals between the bottom plate and the sitting floor, and a plurality of anchor rods are welded at equal intervals at the bottom of the sitting floor. The reinforcing fixing plates strengthen the structural strength connection between the bottom plate and the sitting floor, and the anchor rods are inserted into the ground to make the overall structure more stable.
[0009] Preferably, thick threaded columns I are welded on the middle side and both sides of the upper end of the arc-shaped support frame. The upper end of each thick threaded column I movably penetrates through the ceiling and is threadedly connected with a thick internal threaded ring on the outside. The thick internal threaded ring is threadedly connected to the upper end of the thick threaded column I, which is convenient for fixing the ceiling on the arc-shaped support frame.
[0010] Preferably, fixing strip plates are fixedly connected to the middle and both ends of the wire protection net. The upper end of each thick threaded column I is welded with a thin threaded column. The upper end of each thin threaded column movably penetrates through the fixing strip plate and is threadedly connected with a thin internal threaded ring on the outside. The thin internal threaded ring is threadedly connected to the thin threaded column, which is convenient for fixing the fixing strip plate on the ceiling and arranging the protective layer of the wire protection net.
[0011] Preferably, a plurality of anti-disengagement rods are welded at equal intervals at the upper end of the bottom plate. The upper end of each anti-disengagement rod movably penetrates through the shock absorption plate and is fixedly connected with an anti-disengagement cap. The anti-disengagement rod and the anti-disengagement cap can strengthen the connection between the bottom plate and the shock absorption plate and keep the spring shock absorption damper working properly.
[0012] Preferably, an N-shaped sleeve plate is fixedly connected to the upper end of each supporting steel. The longitudinal beam plate is welded in a row of N-shaped sleeve plates, and the longitudinal beam plate is conveniently welded to the supporting steel through the N-shaped sleeve plate.
[0013] Preferably, two reinforcing beams are welded between adjacent two supporting steels, and a special-shaped support beam is welded between each cross beam plate and the arc-shaped support frame. The reinforcing beams strengthen the structural strength between the supporting steels, and the special-shaped support beams strengthen the structural strength between the cross beam plates and the arc-shaped support frames, thereby enhancing the overall compressive capacity.
[0014] The beneficial effects of the present utility model:
[0015] 1. By setting the anchor rods under the sitting floor to be inserted into the ground, the stability of the support is enhanced. The supporting steel, longitudinal beam plates, cross beam plates and arc-shaped support frames are used to construct a support frame to support and fix the ceiling. The strengthening fixing plate, special-shaped support beam, N-shaped sleeve plate and strengthening beam strengthen the overall connection and enhance the structure. A wire protection net and a shock-absorbing mechanism are set to enhance the shock-absorbing and compressive capacity of the entire support. The wire protection net can prevent falling objects from directly hitting the ceiling, and the shock-absorbing mechanism reduces the impact force and reduces the damage to the ceiling caused by falling objects. Overall, the support has a high compressive capacity, can prevent the ceiling or the overall structure from deforming and being damaged, and effectively guarantees the safety of the operators below.
[0016] 2. By setting the sitting floor on the ground and the anchor rods in the ground, the supporting steel, longitudinal beam plates, cross beam plates and arc-shaped support frames are used to construct a support frame to support and fix the ceiling. The strengthening fixing plate, special-shaped support beam, N-shaped sleeve plate and strengthening beam strengthen the overall connection and enhance the structure. A wire protection net is set to conduct the first buffer impact on falling objects on the ceiling to prevent direct impact on the ceiling. A shock-absorbing mechanism is set to conduct shock absorption and buffering on high-intensity impact forces, thereby reducing the impact force and protecting the ceiling. Overall, the structure has high strength and strong compressive capacity, can effectively resist the impact of falling objects, and enables the ceiling or the overall structure to be free from deformation and damage, effectively guaranteeing the safety of the operators below. Description of the Drawings
[0017] Figure 1 Shown is a three-dimensional structural schematic diagram of an overall high-compressive processing shed support of the present utility model;
[0018] Figure 2 Shown is a three-dimensional structural schematic diagram of a shock-absorbing mechanism of a high-compressive processing shed support of the present utility model;
[0019] Figure 3 Shown is a three-dimensional structural schematic diagram of an arc-shaped support frame of a high-compressive processing shed support of the present utility model;
[0020] Figure 4 Shown is a three-dimensional structural schematic diagram of a ceiling of a high-compressive processing shed support of the present utility model;
[0021] Figure 5 Shown is a three-dimensional structural schematic diagram of a supporting steel of a high-compressive processing shed support of the present utility model.
[0022] In the figure: 1, sitting floor; 201, bottom plate; 202, shock-absorbing plate; 203, spring shock-absorbing damper; 3, supporting steel section; 4, longitudinal beam plate; 5, cross beam plate; 6, arc-shaped support frame; 7, ceiling; 8, wire protection net; 9, anti-disengagement rod; 10, anti-disengagement cap; 11, thick threaded column I; 12, thick internal threaded ring; 13, fixed strip plate; 14, thin threaded column; 15, thin internal threaded ring; 16, anchor rod; 17, strengthening fixing plate; 18, special-shaped support beam; 19, N-shaped sleeve plate; 20, strengthening beam. Specific implementation manner
[0023] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0024] Please refer to Figure 1 , the present utility model provides an embodiment: A high-compression processing shed support includes a sitting floor 1. There are two sitting floors 1. Two groups of shock-absorbing mechanisms are respectively arranged at the upper ends of the two sitting floors 1. Multiple supporting steel sections 3 are evenly arranged at equal intervals at the upper ends of the two groups of shock-absorbing mechanisms. A longitudinal beam plate 4 is arranged at the upper end of a row of supporting steel sections 3. Multiple cross beam plates 5 are welded at equal intervals between the upper ends of the two longitudinal beam plates 4. An arc-shaped support frame 6 is welded at the upper end of each cross beam plate 5. A ceiling 7 is arranged at the upper end of the arc-shaped support frame 6. A wire protection net 8 is arranged at the upper end of the ceiling 7. The shock-absorbing mechanism includes a bottom plate 201, a shock-absorbing plate 202 and a spring shock-absorbing damper 203; the bottom plate 201 is arranged at the upper end of the sitting floor 1. A shock-absorbing plate 202 is welded at the lower end of a row of supporting steel sections 3. A plurality of spring shock-absorbing dampers 203 are fixedly connected at equal intervals between the shock-absorbing plate 202 and the bottom plate 201.
[0025] Please refer to Figure 1 , Figure 3 and Figure 4The support area of the floor 1 is large, and the support steel 3 supports the longitudinal beam 4, each longitudinal beam 4 supports the cross beam 5, and the cross beam 5 supports the arc support frame 6, and then supports the entire ceiling 7. There is a wire protection net 8 on the ceiling 7 to buffer the impact of falling objects for the first time, so as to avoid direct collision with the ceiling 7. When a large high-altitude falling object occurs, the object first hits the wire protection net 8 to slow down, and then touches the ceiling 7. During the process, the impact force is transmitted downward to the shock absorbing mechanism. Under the shock absorption and buffering of multiple spring shock absorbing dampers 203, the impact damage to the ceiling 7 is reduced. The overall structural strength is high and the compressive resistance is strong. It can effectively withstand the impact of falling objects, so that the ceiling 7 or the overall structure is free from deformation and damage, and effectively protect the life safety of the workers below; a plurality of reinforcing fixing plates 17 are welded at equal intervals between the bottom plate 201 and the floor 1. A plurality of anchor rods 16 are welded at equal intervals on the bottom, and a reinforcing fixing plate 17 strengthens the connection between the structural strength of the bottom plate 201 and the sitting floor 1. The anchor rods 16 are inserted into the ground, making the overall structure relatively stable; a coarse threaded column 11 is welded on the middle side and both sides of the upper end of the arc-shaped support frame 6, and the upper end of each coarse threaded column 11 movably penetrates the ceiling 7 and is threadedly connected to a coarse internal threaded ring 12 on the outer side, and the coarse internal threaded ring 12 is threadedly connected to the upper end of the coarse threaded column 11, so as to facilitate fixing the ceiling 7 to the arc-shaped support frame 6; a fixed strip 13 is fixedly connected to the middle and both ends of the steel wire protection net 8, and a fine threaded column 14 is welded on the upper end of each coarse threaded column 11, and the upper end of each fine threaded column 14 movably penetrates the fixed strip 13 and is threadedly connected to a fine internal threaded ring 15 on the outer side, and the fine internal threaded ring 15 is threadedly connected to the fine threaded column 14, so as to facilitate fixing the fixed strip 13 to the ceiling 7 and arranging the protective layer of the steel wire protection net 8.
[0026] See also Figure 2 , Figure 3 and Figure 5 In this embodiment, a plurality of anti-slip rods 9 are welded at equal intervals on the upper end of the bottom plate 201. The upper end of each anti-slip rod 9 movably penetrates the shock absorbing plate 202 and is fixedly connected with an anti-slip cap 10. The anti-slip rod 9 and the anti-slip cap 10 can strengthen the connection between the bottom plate 201 and the shock absorbing plate 202, and maintain the normal operation of the spring shock absorber 203; an N-shaped sleeve plate 19 is fixedly connected to the upper end of each supporting steel 3, and the longitudinal beam plate 4 is welded in a row of N-shaped sleeve plates 19. The longitudinal beam plate 4 is conveniently welded to the supporting steel 3 through the N-shaped sleeve plate 19; two reinforcing beams 20 are welded between two adjacent supporting steels 3, and a special-shaped support beam 18 is welded between each cross beam plate 5 and the arc-shaped support frame 6. The reinforcing beam 20 strengthens the structural strength between the supporting steels 3, and the special-shaped support beam 18 strengthens the structural strength between the cross beam plate 5 and the arc-shaped support frame 6, thereby enhancing the overall compressive resistance.
[0027] When working, the sitting floor 1 is placed on the ground, the anchor rod 16 is driven into the ground, and the supporting steel section 3, longitudinal beam plate 4, cross beam plate 5 and arc-shaped support frame 6 form a support frame to support and fix the ceiling 7. The strengthening fixing plate 17, special-shaped support beam 18, N-shaped sleeve plate 19 and strengthening beam 20 strengthen the overall connection and enhance the structure. A wire protection net 8 is provided to conduct the first buffer impact on falling objects for the ceiling 7, avoiding direct impact on the ceiling 7. A shock absorption mechanism is provided to conduct shock absorption and buffering on high-intensity impact forces, thereby reducing the impact force and protecting the ceiling 7. Overall, the structure has high strength and strong compressive capacity, can effectively resist the impact of falling objects, prevent the ceiling 7 or the overall structure from being deformed or damaged, and effectively guarantee the safety of the operators below.
[0028] Through the above steps, the anchor rod 16 under the sitting floor 1 is driven into the ground to enhance the stability of the support. The supporting steel section 3, longitudinal beam plate 4, cross beam plate 5 and arc-shaped support frame 6 form a support frame to support and fix the ceiling 7. The strengthening fixing plate 17, special-shaped support beam 18, N-shaped sleeve plate 19 and strengthening beam 20 strengthen the overall connection and enhance the structure. A wire protection net 8 and a shock absorption mechanism are provided to enhance the shock absorption and compressive capacity of the entire support. The wire protection net 8 can avoid direct impact of falling objects on the ceiling 7, and the shock absorption mechanism reduces the impact force and the damage to the ceiling 7 caused by falling objects. Overall, the support has high compressive capacity, can prevent the ceiling 7 or the overall structure from being deformed or damaged, and effectively guarantee the safety of the operators below.
[0029] The embodiments of the present utility model have been described in detail above in conjunction with the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the gist of the present utility model.
Claims
1. A processing shed support with high compressive resistance, comprising a seating floor (1), characterized in that: There are two sitting floors (1). Two sets of shock-absorbing mechanisms are respectively arranged at the upper ends of the two sitting floors (1). Multiple support steel beams (3) are equally spaced at the upper ends of the two sets of shock-absorbing mechanisms. A longitudinal beam plate (4) is arranged at the upper ends of a row of support steel beams (3). Multiple cross beam plates (5) are welded at equal intervals between the upper ends of the two longitudinal beam plates (4). An arc-shaped support frame (6) is welded at the upper end of each cross beam plate (5). A ceiling (7) is arranged at the upper end of the arc-shaped support frame (6). A wire protection net (8) is arranged at the upper end of the ceiling (7). The shock-absorbing mechanism includes a bottom plate (201), a shock-absorbing plate (202) and a spring shock-absorbing damper (203); a bottom plate (201) is arranged at the upper end of the sitting floor (1). A shock-absorbing plate (202) is welded at the lower ends of a row of support steel beams (3). A plurality of spring shock-absorbing dampers (203) are fixedly connected at equal intervals between the shock-absorbing plate (202) and the bottom plate (201).
2. The high-compression processing shed support according to claim 1, wherein: A plurality of strengthening fixing plates (17) are welded at equal intervals between the bottom plate (201) and the sitting floor (1). A plurality of anchor rods (16) are welded at equal intervals at the bottom of the sitting floor (1).
3. The high-compressive processing shed support according to claim 1, wherein: A thick threaded column one (11) is welded at the middle side and both sides of the upper end of the arc-shaped support frame (6). The upper end of each thick threaded column one (11) movably penetrates through the ceiling (7) and is threadedly connected with a thick internal threaded ring (12) on the outside.
4. A high-compressive processing shed support according to claim 1, characterized in that: Fixed strip plates (13) are fixedly connected to the middle part and both ends of the wire protection net (8). A thin threaded column (14) is welded at the upper end of each thick threaded column one (11). The upper end of each thin threaded column (14) movably penetrates through the fixed strip plate (13) and is threadedly connected with a thin internal threaded ring (15) on the outside.
5. A high-compression processing shed support according to claim 1, characterized in that: A plurality of anti-disengagement rods (9) are welded at equal intervals at the upper end of the bottom plate (201). The upper end of each anti-disengagement rod (9) movably penetrates through the shock-absorbing plate (202) and is fixedly connected with an anti-disengagement cap (10).
6. The high-compression processing shed support according to claim 1, characterized in that: An N-shaped sleeve plate (19) is fixedly connected to the upper end of each support steel beam (3). The longitudinal beam plate (4) is welded inside a row of N-shaped sleeve plates (19).
7. The high-compressive processing shed support according to claim 1, wherein: Two strengthening beams (20) are welded between adjacent two support steel beams (3). A special-shaped support beam (18) is welded between each cross beam plate (5) and the arc-shaped support frame (6).